Method and apparatus associated with a microcomputer system for indicating next-in-time parameters, and for controllably generating a positional code for a rollalong switch associated with a seismic source-detector array of an exploration system

ABSTRACT

The present invention relates to a method and apparatus for selectively generating a next-in-time positional code for disconnectably connecting recording circuitry to different but contiguous sets of detectors, i.e. an &#34;active&#34; array, from among a plurality of detectors positioned along the line of survey. For this purpose a microcomputer system that includes a system bus connected (via a port) to the rollalong switch, is employed.

FIELD OF THE INVENTION

This invention relates to an improved method and apparatus for providing control of field shooting and recording operations during exploration of hydrocarbons, or the like.

RELATED APPLICATIONS

My following commonly assigned application is incorporated herein by reference:

Ser. No. 169,336 filed July 16, 1980 for "Ground Position Controller And Method For Automatically Indicating And Recording Parameters That Spatially Define Locations Of Seismic Exploration Spread And Source Arrays."

Also, there is an additional commonly assigned application in the area of seismic exploration of interest:

Ser. No. 169,345 filed July 16, 1980 for "Ground Position Controller And Method For Automatically Indicating Parameters That Spatially Cross-Reference The Locations Of Seismic Spread And Source Arrays During Exploration For Hydrocarbons And The Like."

BACKGROUND OF THE INVENTION

While the above-identified ground position controller and method of my related applications provides for automatic generating, formatting, displaying and recording of seismic information (including next-in-time sensor and source array geographic locations), additional operational problems remain.

E.g., as the source-detector array is undergoing advancement along the line of survey, modification to the input parameters (of the ground position controller) must occur where the operations of the controller are interlocked with changes in switch matrix length of a conventional rollalong switch. (The latter switch of course is employed to disconnectably connect recording circuitry to different (but contiguous) sets of detectors, i.e., an "active" array, from among a plurality of detectors positioned along the line of survey.)

SUMMARY OF THE INVENTION

The present invention relates to a method and apparatus for selectively generating a next-in-time positional code for disconnectably connecting recording circuitry to different but contiguous sets of detectors, i.e. an "active" array, from among a plurality of detectors positioned along the line of survey. Such positional code is generated along with other next-in-time source-detector array parameters based on, say the occurrence of an operations signal generated by circuitry associated with a digital field system (DFS). For this purpose a microcomputer system that includes a system bus connected (via a port) to the rollalong switch, is employed. The positional code generating system also features closed loop control to insure that the final position of the switch is the correct one.

DESCRIPTION OF THE DRAWINGS

These and other functions of the present invention will become evident to those skilled in the art from a reading of detailed descriptions of embodiments thereof, following a brief description of the appended drawings.

FIGS. 1 and 2 illustrate an exploration system incorporating the present invention in which a source of energy and an array of sensors connected to a recording truck, are illustrated.

FIGS. 3 and 6 are block diagrams of the ground position controller of the present invention including a microcomputer system in operational contact with an encoder and a display panel within the exploration system of FIGS. 1 and 2;

FIG. 4 is an isometric view of the display panels of the controller of FIGS. 3 and 6;

FIG. 5 is a block diagram of a microprocessor unit of the controller of FIGS. 3 and 6;

FIGS. 7A, 7B, 7C, 7D, 8, 9A and 9B are flow diagrams which illustrate the method of the present invention.

DESCRIPTION OF THE PREFERRED EMBODIMENTS OF THE INVENTION

FIG. 1 illustrates operation of seismic exploration system 9 of the present invention.

As shown, system 9 includes digital field system (DFS) 10, housed within recording truck 11 and electrically interconnected via a multiwire geophysical cable 12 to an array of sensors 13 positioned at the earth's surface 14. Ground locations 15 are represented as surrounding both the array of sensors 13 and seismic energy source 16, all positioned along the surface 14. As previously mentioned in the CDPR collection process, the ground locations 15 would, more likely than not, have been previously surveyed prior to implementation of the seismic surveying operation along the line of survey 17 in the direction of arrow 18. Hence, each of the locations 15 can be designated by a particular position number (or P number) along the line 17. The P numbers set forth in FIG. 1 include the numbers 300, 301 . . . 329. Also, the number of sensors 13 forming each array (as the data is collected) is identified by the sequence numbers N, N+1 . . . N+M designating the length of the active array as the sensors 13 are advanced in the direction of arrow 18.

Annotating the positions of the sensor arrays is aided by the fact that each sensor is associated with a particular data channel 1, 2 . . . K of the DFS 10 as the data is collected. For usual operations K can be 24, 48, 60, 96, 120, etc., as required, although, of course, the present invention is not limited to a particular channel capacity number, but can be varied to accommodate any field arrangement. Each sensor position and each source location can be indicated using the ground position controller 20 of the present invention in conjunction with recording unit 21 of the DFS 10.

FIG. 2 illustrates ground position controller 20 in more detail.

Briefly, the ground position recorder 20 operates in the field to insure integrity between prescribed and actual field shooting and recording operations by a series of steps, namely, storing, manipulating and displaying data related

(i) to field positions of the source and sensor array by position number,

(ii) to array and source geometrical locations (both present and next-in-time) based on field geometrical algorithms and

(iii) to recording array and source parameters so that realistic annotation of the subsequently collected seismic data can be made. For these purposes, the operator utilizes encoded data provided initially by him using encoders 26, manipulated results generated by the controller 20 based on part in stored relationships within the microcomputer 25, and finally indicating geometrical data set forth at displays 27 and as header information at recording unit 21.

Since the present invention deals conveniently with the CDPR process, the array of sensors 13 and source of energy 16 are continually "rolled forward" in the direction of arrow 18 using rollalong switch 22. That is to say, after the seismic data has been recorded at the digital tape recording unit 21 (after amplification by amplifier 24), the array of sensors 13 (and source 16) located at a first series of positions P as shown, are "rolled forward" in the direction of arrow 18. Note that the changing of the active array pattern of FIG. 1 in the aforementioned manner is identified by the array sequence designated N, N+1 . . . N+M, as previously mentioned. But, the array and source geometry is always known at the recording truck 11 provided the positional locations 300, 301, 302 . . . P of FIG. 1 for the particular active array N, N+1 . . . N+M are correctly identified and recorded during each recording cycle, via operation of the ground position controller 20 of the present invention; of particular importance is the manipulation of data associated with the field geometry of the sensors 13 and source 16 via geometrical and performance algorithms stored within microcomputer 25 of the controller 20.

As previously mentioned, microcomputer 25 is used to predict correct array positions as the rollalong switch 23 switches between "active" and "inactive" arrays of sensors. The microcomputer 25 can also interact with the rollalong switch 22, provided the latter is capable of accepting the multi-bit codes conventionally generated by the microcomputer 25. (In this regard, an approved rollalong switch is manufactured under the tradename "Rolalong Switch," by Input-Output, Inc., Houston, Tex., and consists of a series of contacts attached to a central shaft of a stepping motor controlled via a digital input code from the microcomputer 25.)

Rollalong switch 22 usually includes a display (not shown) associated with one or two of the locational positions of the active array of sensors 13. Such display, of course, changes as the active array changes sequential pattern in the manner of N, N+2 . . . N+M, as shown in FIG. 1. The rollalong switch 22 also includes a digital generator (not shown) for generating a second multi-bit code indicative of the position P of a member of the sensor array as header indicia at the recorder 21. However, as previously mentioned, the latter digital code represents only an arbitrary number and is not a true geodytic location.

FIG. 3 illustrates microcomputer 25 of controller 20 in still more detail.

As shown, the microcomputer 25 includes a system bus 28 used to connect encoders 26 and displays 27 via I/O interrupt array 34 to microprocessor unit 30 (MPU) of the microcomputer 25. Also connected via the bus 28 and ports 29 are interrupt controller 31, RAM 32, ROM 33 (in addition to I/O interfacing array 34) which operates in conventional fashion to calculate, manipulate, store and display position data associated with the exploration operation. Note that the I/O array 34 not only links the MPU 30 with the encoders 26 and displays 27, but it is also used to provide data to the printer 35 under control of MPU 30 to generate a permanent record of the displayed data at displays 27, if desired.

Bus 28 essentially comprises three separate buses, a data bus, an address bus and a control bus. The data bus is conventional: it not only carries information to and from MPU 30, but it is also used to fetch instructions that have been stored in ROM 33, as required, as well as carries data from/to the encoders 26 and displays 27 of FIG. 2, by way of (or independent of) RAM 32.

Addressing segments of the data is the annotations function of the address bus. It is capable of selecting a location in RAM 32 or ROM 33 or a particular address in the MPU 30 when appropriately signaled, say by interrupt controller 31. The control bus controls the sequencing and nature of the operation using common selector commands, e.g., "Read," "Write," etc.

Additionally, it should be noted, the system interrupts are usually carried via the control bus to implement the scheduling and servicing of different ports, as required by operations. In the present invention, interrupt controller 31 handles seven (7) vectored priority interrupts for the MPU 30, as explained below, including an end-of-record interrupt (EOR) generated by the digital field system 10, FIG. 1, to indicate the end of the collection cycle, and to initiate operations in the next-in-time cycle.

In general, in servicing the interrupts, preservation of program status is required and is easily carried by the MPU 30. Since the controller 31 is both vectored and priority oriented, it has the resonsibility of providing vectored interrupts to the MPU 30, of identifying the nature of the interrupt, (or its branching address) and of establishing priority between competing interrupts. In particular in servicing the EOR interrupt, the steps set forth in FIGS. 9B and 9D are executed to bring about automatic updating of the array and source geometry to achieve the next-in-time collection of data, based in part on the field algorithms contained in equation sets I, II, III or IV set forth below.

FIG. 4 illustrates the nature of the data provided at encoders 26 and displays 27.

The operator initially calibrates positions of the exploration array and source with previously surveyed geographical stations. Information has been already encoded via the encoders 26 for use by microcomputer 25 before operations begin. Encoded data at encoders 26 includes:

(i) truck location (vis-a-vis survey stations of known geographic location) encoded at encoder sub-element 40;

(ii) slave truck location (if applicable) encoded using encoder sub-element 41;

(iii) reference station location (where the end of the spread is initially positioned) encoded via encoding sub-element 42;

(iv) initial location of the energy source encoded using encoder sub-element 43;

(v) the number of shots or sweeps encoded at sub-element 44;

(vi) the initial gap position, stored at sub-element 45;

(vii) the gap spacing encoded using encoder sub-element 46; and

(viii) gap roll increment encoded using sub-element 47.

The operator also has the initial responsibility of encoding other data which, for the most part, does not change during the survey. In this regard, the operator may have to only initially encode shot depth and size (at sub-elements 48 and 49), shot direction and offset (at sub-elements 50 and 51) as well as data related to the spread, as to its direction (at sub-element 52) and the distance between groups (at sub-element 53).

Switch arrays generally indicated at 54 and 55 are also set by the operator. Data provided by these switch arrays, relate to two or three possible switch states of the switches 56-66 which are, for example, related to the type of survey and run conditions occurring after the survey is underway.

In this regard, the functions of the switches are as follows: Switch 56 specifies line direction; switch 57 specifies truck rank, i.e. determines if the reference truck is the master (or slave) in relationship with an alternate truck; switch 58 specifies operations in either a serial or in a parallel mode, the mode being related to whether one or two arrays of geophones are used in-line or parallel to the corresponding source line; pushbutton switches 59 and 60 relate to start up and to alarm reset functions respectively; switch 59, of course, initializes operations after all synchronization has been completed; switch 60 turns off the audio alarm in the event that a signal of some importance has been generated causing the alarm to also activate; transmit switch 61 "triggers" the energy source, and is operative only after the operator is assured the correctness of the array and source positions as displayed at displays 27; switches 62 and 63 related to (i) the "trigger" link associated with the activation of the source (electrical wire-line or radio) and (ii) whether or not the roll switch 22 (FIG. 2) is to be in an active or passive state. Three-position switch 64 establishes whether or not the operation is to be in a manual, automatic or test mode; update switch 65 operates only when the switch 64 is in the manual mode and is used (in manual mode) to initiate advances of the roll switch so as to generate new ground locations for the array after the recording cycle has been completed; and switch 66 is a conventional power-on switch.

Displays 27 may be conventional LED segmented displays except that they are microcomputer implemented. Primary purposes of the displays 27: to provide data to the operator so that determinations as to whether or not the system is functioning correctly can be made, and to allow the operator to act as an independent cross-checker of the correctness of the displayed ground locations. The data at displays 27 relate for the most part to the type of run being undertaken and survey conditions.

In this regard, the nature of the displays 27 is as follows: subdisplays 70 and 71 indicate shot location and number of shots per location, respectively; subdisplays 72-75 relate to geographic locations of the active array as a function of time; subdisplay 76 specifies the position of the slave reference; status subdisplay 77 specifies (by code) the occurrence of certain activities during the exploration operation which may be accompanied by an audio alarm to indicate the immediate need for operator intervention, the meaning of the status code at subdisplay 77 being as set forth below, in Table I.

                  TABLE I                                                          ______________________________________                                         Code    Activity                                                               ______________________________________                                         0       Setup for sequence start operation                                     1       Geometrical mistie                                                     2       Ready for update or update in progress (if                                     in auto mode)                                                          3       Roll Switch Moving                                                     4       Roll Switch (Stopped in position)                                      5       Roll Switch Disabled                                                   6       Slave Reference Code Received                                          7       Transmission Reference Error (slave                                            reference code not received)                                           8       Load Ref Output At Shift Register                                      9       Transmit (one bit of ref code)                                         A       Gap Set Mistie                                                         D       Occurrence of Last Shot                                                1X      Beeper On With Status Displayed as to Code                                     0, 1, . . . 9, A, D, alone.                                            53      Step Roll Switch Up With Beep on and Code "3"                          93      Step Roll Switch Down With Beep on and                                         Code "3".                                                              ______________________________________                                    

Explanation of Table I: status code "0" occurs any time that the controller 20 is powered up to cue the operator that all input data at the encoders 26 must then be set. Sequencing start button 59 terminates the cueing operation; status code "D" indicates that the last shot position is at hand and thus, the truck location and connection station vis-a-vis the array must be changed; status codes "3," "4," "5" and "53" and "93" indicate certain roll switch activities. If there are errors in the programmed exploration activity, warning codes are also generated by the status codes "1"; and "7".

OPERATIONAL SEQUENCE

Assume the operator has initially calibrated the start-up positions of the array and source with the surveyed locations. As previously indicated in regard to FIG. 4, this entails encoding of positional data via encoders 26 in conjunction with proper setting of the switching arrays 54, 55. The result: corresponding shot, spread and associated data appear at the displays 27 due to the interaction of data relationship established through operation of the microcomputer 25 of FIG. 2. In order to better understand how the present invention uses all data, perhaps a brief overview of the hardware aspects of the microprocessor 30 is in order and is presented below in connection with FIG. 5.

It should be initially noted that MPU 30 is preferably an Intel 8085 microprocessor, a product of Intel Incorp., Cupertino, Calif. As is well known, it has a microprocessor and controller integrated into a single chip. It also includes an array of registers 82 tied to an ALU 83 via an internal data bus 84 controlled via control unit 85. Program counter 86 and instructional register 87 have dedicated uses; the other registers, such as accumulator 88, have more general uses. In the 8085, expanded control functions result because the low-eight (8) address bits have the capability of being multiplexed. Such operation occurs at the beginning of each instructional cycle; the low-eight address lines appear via ALE line 89 for control of different elements of the location, including encoders 26, displays 27, and printer 35 through I/O interface array 34 of FIG. 6.

As shown in FIG. 6, while the I/O array 34 is conventional, it must be capable of handling a series of 8-bit independently addressable codes. For this purpose, it preferably comprises a multiplicity of 8-bit I/O port chips independently addressable via ALE line 89 of FIG. 5 of the MPU 30. Each 8-bit I/O port chip preferably comprises an 8-bit latch combined with a 3-state output buffer in which each can be separately driven. In determining location of data via address decoder 38, the MPU 30 also must manipulate the data using known geometrical relationships in which encoded positional data can be translated as required, depending on several factors.

UPDATE AND CODE GENERATING SEQUENCE

The foregoing operations assume that the operator has encoded all pertinent data via the encoders 26; and that switch arrays 54, 55 have been properly set. Initially the control and reference location position data from encoders 26 (and the switch arrays) are fetched by the MPU 30. The MPU 30 next performs the required manipulation of that data to provide spatial array and source geometries of interest in the manner of FIGS. 7A-7D, as well as provide for the generation of a roll positioning code in the fashion of FIGS. 8, 9A and 9B. While manipulation of data without and within the MPU 30 including

(i) the executing of the power-up routine of FIG. 7A;

(ii) the triggering of system update routine via FIG. 7B;

(iii) the sequencing of the start routine of FIG. 7C; and

(iv) the triggering of the alternate manual update routine of FIG. 7D, are all of some importance, the generation of the roll positioning code of FIGS. 8, 9A and 9B can take on a somewhat greater significance in moment-to-moment field operations. Hence, a brief description of the generation of such code is in order and is presented below.

With specific reference to FIG. 8, note that the generation of the next-in-time rollalong switch code (and associated array parameters) can proceed in either one or two loops: via loop 100, as when the updating sequence is automatically undertaken; or via loop 101 under contrary circumstances. Note that the key to loop selection is decisional step 103 where the state of mode switch 64 (FIG. 4) is tested. If the mode switch 64 is in an automatic response state, the occurrence of an end-of-record (EOR) signal from circuitry associated with DFS 10 (FIG. 1) at step 104 causes the loop 100 to execute step 105. A next-in-time roll position code is then generated.

On the other hand, assuming mode switch 64 is in a contrary operating state, the loop 101 is caused to execute step 105 when manual update switch 65 (FIG. 4) is engaged (at step 106). In either case, the result is the generation of a next-in-time roll position code via step 105.

FIGS. 9A and 9B describe--in more detail--how the positional code for rollalong switch is generated.

As shown in FIG. 9A, initial execution depends on the answer provided by decisional step 107: if the roll direction vis-a-vis the advancement of the detectors increases numerically in the direction of each advancement, i.e. in the "up" direction, then loop 108, including steps 109 and 110, is executed. On the other hand, if the roll direction is in the down direction, i.e. ground locations decrease numerically in the direction of array advancement, then loop 111, including steps 112 and 113, is executed.

FIG. 9B illustrates the main thrust of steps 109, 110 and 112 and 113 in still more detail.

Note in FIG. 9B that after a stepping pulse (for the stepping motor of the rollalong switch) generated at step 115, has been transmitted to the roll switch at step 116 and displayed at step 117, a selected time interval must pass (at step 118) before iteration can occur, dependent on the rollalong switch response characteristics. At step 119, if the final--correct--position of the switch has not been reached, iteration via loop 120 occurs, (see FIG. 3) indicating that the switch itself provides a cross-checking code. Note that as the roll position code is being generated, the results are displayed using a portion of the displays 27 of FIG. 4.

Values of array parameters appearing at displays 27 of FIG. 4, including the selective alarm-generating code of FIG. 8, are, of course, dependent upon use of cetain geometrical equation sets, viz, equation sets I, II, III and IV set forth below, stored in the MPU 30 and selectively utilized by the controller 20 as required.

SEQUENCE START EQUATION SET I

Assume both the ground location numbers and data channel numbers increasing along the seismic line in the direction of arrow 18; accordingly, the following set of equations control operations:

    RLSP=REF-NP-TR                                             (1)

    END 1=REF                                                  (2)

    END 2=REF+GPNO+K-1                                         (3)

If GPNO=0

    GAP 1=0                                                    (4)

    GAP 2=0                                                    (5)

If GPNO>0

    GAP 1=REF+GPLOC-1                                          (4)

    GAP 2 (N)=GAP 2 (N-1)+Roll                                 (5)

    ROOM=TR-REF-GPNO+1                                         (6)

Table II, below, defines the notations used above in connection with the Equation Set I.

                  TABLE II                                                         ______________________________________                                         Notation DEFINITION                                                            ______________________________________                                         SHLO     Energy source location                                                SHNO     Energy source number                                                  REF      Location of reference sensor                                          ROOM     No. of rollalong switch positions available                                    for advancing the active spread                                       TR       Ground reference for recorder location                                PNO      Number of geophone groups in the GAP                                  GPLOC    Location of the GAP                                                   K        Number of data channels in recording system                                    (24, 48, 60, 96, 120, etc).                                           END 1    Ground location of the geophone group inter-                                   connected through the rollalong switch to                                      the first data channel of the recorder.                               END 2    Ground location of the Kth data channel                               GAP 1    Ground location of the data channel below                                      the GAP on the first data channel side.                               GAP 2    Ground location of the data channel above                                      the GAP toward the Kth channel.                                       RLSP     Rollalong switch position required for a                                       desired active spread location.                                       NP       Number of rollalong switch positions avail-                                    able minus 1. (N-1). Rollalong switch                                          must be configured for K+N inputs and K                                        outputs.                                                              GL(+)    Ground location numbers along the seismic                                      line increasing numerically in the                                             direction in which the active geophone                                         array is advanced for each successive                                          record sequence                                                       GL(-)    Ground locations numbers decreasing numeri-                                    cally in the direction in which the active                                     spread is advanced.                                                   CH(+)    Seismic data channel increasing (1 to K)                                       numerically along the active spread in the                                     direction in which the active spread is                                        advanced.                                                             CH(-)    Seismic data channels numerically decreasing                                   (from K to 1) in the direction in which                                        the active spread is advanced.                                        ______________________________________                                    

Note that the signs (+) (-) of each of the ground location numbers (GL) signifies its relationship with respect to the direction of the array advance; the reference sensor and the sign of the channel number are also dependent on the array reference status. If the latter is 1, the CH is positive. If not, then the sign is negative.

SEQUENCE START EQUATION SET II

With the ground location numbers increasing but the channel numbers decreasing, the following set of equations is used:

    RLSP=TR-REF-GPNO+1                                         (1)

    END 1=REF+GPNO+K-1                                         (2)

    END 2=REF                                                  (3)

If GPNO=0

    GAP 1-0                                                    (4)

    GAP 2=0                                                    (5)

If GPNO>0

    GAP 1=END 1-GPLOC-1                                        (4)

    GAP 2=END 1-GPLOC-GPNO                                     (5)

    ROOM=TR-REF-GPNO.                                          (6)

SEQUENCE START EQUATION SET III

With ground location numbers decreasing but the channel numbers increasing, the following set of equations is used:

    RLSP=TR+NP-REF                                             (1)

    END 1=REF                                                  (2)

    END 2=REF-(K-1)-GPNO                                       (3)

If GPNO=0

    GAP 1=0                                                    (4)

    GAP 2=0                                                    (5)

If PPNO>0

    GAP 1=REF-GPOC-1                                           (4)

    GAP 2=REF-GPLOC-GPNO                                       (5)

    ROOM=REF-TR-GPNO+1                                         (6)

SEQUENCE START EQUATION SET IV

With both ground location numbers and channel numbers decreasing, the following set of equations is used:

    RLSP=REF-TR-GPNO+1                                         (1)

    END 1=REF-(K-1)-GPNO                                       (2)

    END 2-REF                                                  (3)

If GPNO=0

    GAP 1=0                                                    (4)

    GAP 2=0                                                    (5)

If GPNO>0

    GAP 1=END 1+GPLOC-1                                        (4)

    GAP 2=END 1+GPLOC+GPNO                                     (5)

    ROOM=REF-TR-GPNO                                           (6)

Following these operations, the operator peruses the data at displays 27 and the encoders 26. If it is correct, he activates the trigger switch 61 (FIG. 4) to ultimately cause the energy source 16 (FIG. 1) to be activated. But before that can run, there is transference of all pertinent header data to the digital field recorder 21.

It should be understood that the invention is not directed to specific embodiments set forth above, but that many variations are readily apparent to those skilled in the art, so thus the invention is to be given the broadest possible interpretation within the terms of the following claims. 

What is claimed is:
 1. Method of controllably providing a next-in-time positional code for a rollalong switch of a digital field system of an exploration system that includes a source-detector array positioned along a line of survey for generating and collecting seismic data associated with earth formation underlying said array, said rollalong switch being employed to efficiently connect (and disconnect) different but contiguous sets of detectors of said array from amid a plurality of detectors, along said line of survey, said next-in-time positional code being simultaneously generated along with additional next-in-time array parameters associated with said exploration system, by a microcomputer system that includes an MPU memory units and display and switch means interconnected to each other and to said digital field system via a system bus, comprising:(a) on being commanded by a roll switch update signal, establishing in digital format said next-in-time positional code for said rollalong switch; (b) transmitting said code to said rollalong switch while simultaneously indicating to a human operator via at least one of audio and visual signals, that transmission of said next-in-time code is occurring; (c) terminating transmission of said code when a correct rollalong switch position is attained.
 2. Method of claim 1 in which said roll switch update signal is automatically generated by said DFS as an end-of-record signal.
 3. Method of claim 1 in which said roll switch update signal is manually generated by activating switching means of one of said display and switching means of said microcomputer system.
 4. Method of claim 1 in which said positional code is transmitted as a stepping pulse code, one bit pulse at a time, and said code is terminated when a feedback signal indicative of roll switch position matches said generated next-in-time positional code.
 5. A method of generating a next-in-time positional code simultaneously with generating next-in-time array and source parameters related to an exploration system during generation and collection of seismic data by a source-detector array positioned at known locations along a line of survey, said next-in-time positional code controlling a roll-along switch in operation contact with said array by selective change in switch matrix position, said positional code being generated as bits of digital data using a microcomputer system that includes a microprocessor unit (MPU), memory units and display, switching and alarm means interconnected to each other and to a digital field system (DFS) via a system bus, comprising:(a) after a roll switch updating signal has been received, establishing via said microcomputer system, said next-in-time positional code for said rollalong switch; (b) determining up or down roll direction of switch matrix advance with reference to at least one of said known locations along said line of survey; (c) generating and transmitting a step pulse code in association with said position code; (d) indicating at said display, switching and alarm means of said microcomputer systems via at least one of audio and visual signals, the occurrence of (c); (e) terminating (c) when the final position of the roll switch matches that associated with the generated next-in-time positional code of said microcomputer system.
 6. Method of claim 5 in which said step pulse code of step (c) is generated a pulse at a time, and said termination of switch advance of step (e) only occurs when a final stepping pulse causes a generated feedback code indicative of roll switch position by said rollalong switch to be compared favorably with said generated next-in-time positional code.
 7. The method of claim 6 in which said said generated feedback code is compared with said generated next-in-time positional code within said microcomputer system.
 8. A ground position controller for generating a next-in-time positional code simultaneously with generating next-in-time array and source parameters related to an exploration system during generation and collection of seismic data by a source-detector array positioned at known locations along a line of survey, said next-in-time positional code controlling a rollalong switch in operation contact with said array by selective change in switch matrix position, said positional code being generated as bits of digital data, comprising a microcomputer system that includes a microprocessor unit (MPU), memory units and display and switching means interconnected to each other and to a digital field system (DFS) via a system bus, separate encoding means interconnected to said microcomputer system via said system bus for automatically encoding digitial data related to array geometry, exploration and next-in-time rollalong switch parameters that allow repetition in sequence of activities along said line of survey, separate display means for automatically displaying at least a portion of said encoded data including incremental and final rollalong switch position in alpha-numeric form for operator examination and for correction, if required.
 9. Controller of claim 8 in which said microcomputer system includes audio-alarm means tied to and actuated by said microcomputer system via said system bus, on the occurrence of a roll switch matrix position change. 